Distribution Characteristics of Soil Moisture in the Three Rivers Headwaters Region, China

R. Cao, X. Jin
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引用次数: 1

Abstract

The change of soil moisture has significant influence on the surface energy distribution and evapotranspiration process and causes the climatic environment changes. It is thus urgent to detect soil moisture facing climate change problems. Based on apparent thermal inertia method, the GLDAS soil moisture of the layer in 0 ~ 10 cm, 10 ~ 40 cm, 40 ~ 100 cm, 100 ~ 200 cm under the ground surface are proceeded for downscaling and the monthly soil moisture are obtained by combination of MODIS data. Statistics of precipitation and temperature of 13 meteorological stations in the Three River Headwater Region (TRHR) are collected to analyze the correlation between soil moisture change and temperature and precipitation. The correlation between soil moisture and evapotranspiration (ET) are analyzed by using the surface energy balance system model to calculate the average evapotranspiration in the study area. The result indicated that (1) Apparent thermal inertia (ATI) is positively correlated with soil depths in the four layers below the surface and has the best correlation with 0 ~ 10 cm soil moisture. Soil moisture increases with soil depth. Soil moisture is lowest under 0 ~ 10 cm depth while highest under 10 ~ 40 cm on average. (2) In terms of spatial distribution of TRHR, soil moisture is higher in the northwest and southeast, but lower in the southwest and northeast than average. The temporal variation of the soil moisture in one year was high in summer and low in winter, and the average annual soil moisture increased with time. (3) Soil moisture is negatively correlated with temperature and positively corre-lated with precipitation. There is a positive correlation between soil moisture and evapotranspiration. The linear regression coefficient of determination R2 is 0.8489.
中国三江源地区土壤水分分布特征
土壤水分的变化对地表能量分布和蒸散过程有显著影响,引起气候环境的变化。因此,对气候变化问题下的土壤湿度进行检测是迫在眉睫的。基于视热惯性法,对地表以下0 ~ 10 cm、10 ~ 40 cm、40 ~ 100 cm、100 ~ 200 cm层的GLDAS土壤水分进行降尺度处理,并结合MODIS数据获得月土壤水分。利用三江源地区13个气象站的降水和气温数据,分析了土壤湿度变化与气温和降水的相关性。利用地表能量平衡系统模型计算研究区平均蒸散量,分析了土壤水分与蒸散量的相关性。结果表明:(1)地表以下4层土壤深度与表观热惯性(ATI)呈正相关,与0 ~ 10 cm土壤湿度相关性最好;土壤水分随土壤深度的增加而增加。土壤水分在0 ~ 10 cm深度下最低,在10 ~ 40 cm深度下平均最高。(2)从土壤TRHR的空间分布来看,土壤湿度在西北和东南部高于平均水平,而在西南和东北低于平均水平。年内土壤水分的时间变化表现为夏季高,冬季低,年平均土壤水分随时间的推移而增加。(3)土壤湿度与气温呈负相关,与降水呈正相关。土壤水分与蒸散量呈正相关。决定线性回归系数R2为0.8489。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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